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Software Engineer, Machine Learning Infrastructure

Botauto
Full Time
Houston, TX or San Francisco Bay Area BasedPosted 7 days ago

Role Overview

Botauto is hiring a Software Engineer, Machine Learning Infrastructure. This is a full-time role in Houston, TX or San Francisco Bay Area Based. Part of Botauto's Lifecycle hiring, posted last week. Full responsibilities, required qualifications, and the apply link are listed in the description below.

Salary Context

Salary is not disclosed in this posting. Market median for Lifecycle roles is $100k-$135k (based on 106 comparable listings). Many employers share specifics during the interview process or after an initial screen.

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PythonKubernetesSparkORIntroductionAtBotAuto

Job description

Company Introduction

At Bot Auto, we are revolutionizing the transportation of goods with our cutting-edge autonomous trucks, enhancing the quality of life for communities around the globe. With the agility of a start-up and the wisdom of seasoned experts, Bot Auto boasts a team that has achieved numerous world-firsts and unparalleled innovations. United by a shared vision, we create miracles and propel the future of transportation. Join us and transform your dreams into reality.

We are seeking a highly skilled and motivated Software Engineer to design, develop, and scale our machine learning annotation, evaluation, and training infrastructure. This role is central to the quality and velocity of our perception and ML models — from curating and managing high-quality annotated datasets, to building robust evaluation pipelines that drive continuous model improvement. The ideal candidate combines strong systems engineering skills with a deep understanding of ML Workflows/Ops and large-scale data infrastructure.

Key Responsibilities

Machine Learning & Deep Learning Infrastructure

  • Evaluation Platform — Architect and own a scalable, end-to-end model evaluation platform for perception and prediction models central to autonomous driving. Define metrics, design for scale, and make results actionable for researchers.
  • Training Infrastructure — Partner with research scientists to optimize and scale distributed training workflows. Integrate experiment tracking and reproducibility into the model lifecycle from day one.
  • Dataset & Feature Store — Design and maintain a versioned, high-quality training data store that accelerates model development and supports rapid iteration.
  • ML Pipelines — Build automated pipelines spanning data preparation, model training, validation, and deployment — enabling fast experimentation and reproducible outcomes.
  • Annotation Platform — Contribute to tooling and infrastructure that powers high-throughput, high-accuracy data annotation at scale.
  • MLOps — Develop production ML services that treat models as products — with reliability, observability, and continuous improvement built in.

Data Infrastructure

  • Maintain and evolve a robust data storage and access layer (S3 data lake, Delta Lake) underpinning annotation, evaluation, and training workflows.
  • Build scalable, reliable data collection pipelines supporting diverse vehicle dispatch missions.
  • Develop foundational services and packages that provide clean, performant access to autonomous driving data across the stack.

Qualifications

Required:

  • Educational Background: Bachelor's or Master's in Computer Science, or equivalent practical experience.
  • Strong Programming Skills: Strong proficiency in Python; working knowledge of C++
  • ML/DL Infrastructure Experience — Demonstrated hands-on experience building or scaling at least one of the following in a production environment:
    • Evaluation platforms — automated model benchmarking, metric computation, and regression tracking across model versions.
    • Training infrastructure — distributed training pipelines, experiment tracking, and model lifecycle management (e.g. W&B, MLflow, ClearML).
    • Dataset curation & feature stores — versioned dataset management, data lineage, and tooling for high-quality training data at scale.
    • Annotation platforms — tooling or pipelines that support high-throughput, high-accuracy labeling workflows.
  • Distributed Systems — Strong experience with distributed computing and container orchestration — Kubernetes, Spark, or comparable frameworks.
  • Ability to operate independently: scope ambiguous problems, make sound architecture decisions, and drive them to completion.

Preferred:

  • C++ experience in performance-sensitive or safety-critical applications
  • Full-stack service development experience.
  • Prior work in autonomous driving or robotics.

About Botauto

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Botauto

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24 other open roles at Botauto on TryApplyNow.

Frequently Asked Questions

How do I apply for the Software Engineer, Machine Learning Infrastructure position at Botauto?

Use the Apply button above to submit your application directly to Botauto. Most applications take less than 5 minutes if your resume and contact details are ready, and you'll be routed to the employer's official application system to finish.

Where is the Software Engineer, Machine Learning Infrastructure position at Botauto located?

This position is based in Houston, TX or San Francisco Bay Area Based. Botauto has not indicated remote or hybrid options for this role, so candidates should plan for on-site work.

What does a Software Engineer, Machine Learning Infrastructure at Botauto earn?

Botauto has not disclosed a salary range in this posting. Many employers share specifics later in the interview process; you can also ask during a recruiter screen if compensation transparency is important to you.

When was the Software Engineer, Machine Learning Infrastructure role at Botauto posted?

This role was posted on July 2, 2026 (7 days ago). It's still listed as actively hiring; we re-confirm openings against the source system multiple times per day and remove closed roles.

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